IP Library Granted Patent US 11,279,612
Granted Patent B2
US 11,279,612 · App. 15/699,306 · Granted Mar 22, 2022

MEMS actuation systems and methods

Inventors: Xiaolei Liu (South Pasadena, CA); Matthew Ng (Rosemead, CA); Guiqin Wang (Arcadia, CA)
Assignee: MEMS DRIVE (NANJING) CO., LTD.
B81B3/0021H04N5/2254B81B2203/0118
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Quick Facts
Patent No.
US 11,279,612
App. No.
15/699,306
Granted
Mar 22, 2022
Kind
B2
Abstract

A micro-electrical-mechanical system (MEMS) actuator includes: a MEMS actuation core, and a multi-piece MEMS electrical connector assembly electrically coupled to the MEMS actuation core and configured to be electrically coupled to a printed circuit board, wherein the multi-piece MEMS electrical connector includes: a plurality of subcomponents, and a plurality of coupling assemblies configured to couple the plurality of subcomponents together.

Claims (53)

1. A micro-electrical-mechanical system (MEMS) actuator comprising:

a MEMS actuation core; and

a multi-piece MEMS electrical connector assembly electrically coupled to the MEMS actuation core and configured to be electrically coupled to a printed circuit board, wherein the multi-piece MEMS electrical connector includes:

a plurality of subcomponents, and

a plurality of coupling assemblies configured to couple the plurality of subcomponents together, wherein each of the plurality of coupling assemblies includes a latch bolt and a latch catch configured to engage the latch bolt, wherein each latch catch includes a tumbler spring for engaging a recess in the latch bolt, and wherein each latch bolt includes a push spring configured to bias the latch bolt against the tumbler spring.

2. The micro-electrical-mechanical system (MEMS) actuator of claim 1 wherein the MEMS actuation core includes a stationary portion and a moveable portion.

3. The micro-electrical-mechanical system (MEMS) actuator of claim 1 wherein the MEMS actuation core includes a plurality of electrically conductive flexures.

4. The micro-electrical-mechanical system (MEMS) actuator of claim 3 wherein the multi-piece MEMS electrical connector includes four subcomponents and a plurality of coupling assemblies configured to couple the four subcomponents together.

5. The micro-electrical-mechanical system (MEMS) actuator of claim 4 wherein:

a first portion of the plurality of electrically conductive flexures are configured to electrically couple a first portion of the MEMS actuation core to a first subcomponent;

a second portion of the plurality of electrically conductive flexures are configured to electrically couple a second portion of the MEMS actuation core to a second subcomponent;

a third portion of the plurality of electrically conductive flexures are configured to electrically couple a third portion of the MEMS actuation core to a third subcomponent; and

a fourth portion of the plurality of electrically conductive flexures are configured to electrically couple a fourth portion of the MEMS actuation core to a fourth subcomponent.

6. The micro-electrical-mechanical system (MEMS) actuator of claim 5 wherein the first, second, third and fourth portions of the plurality of electrically conductive flexures are configured to be generally flat in shape when the plurality of subcomponents are uncoupled.

7. The micro-electrical-mechanical system (MEMS) actuator of claim 5 wherein the first, second, third and fourth portions of the plurality of electrically conductive flexures are configured to be generally arched in shape when the plurality of subcomponents are coupled together.

8. The micro-electrical-mechanical system (MEMS) actuator of claim 1 wherein the multi-piece MEMS electrical connector assembly is configured to be rigidly attached to the printed circuit board.

9. The micro-electrical-mechanical system (MEMS) actuator of claim 8 wherein the multi-piece MEMS electrical connector assembly is configured to be wire bound to the printed circuit board via a plurality of wire bond connections.

10. The micro-electrical-mechanical system (MEMS) actuator of claim 9 wherein the plurality of wire bond connections are encapsulated in epoxy.

11. A micro-electrical-mechanical system (MEMS) actuator comprising:

a MEMS actuation core including:

a stationary portion,

a moveable portion, and

a plurality of electrically conductive flexures; and

a multi-piece MEMS electrical connector assembly electrically coupled to the MEMS actuation core and configured to be electrically coupled to a printed circuit board, wherein the multi-piece MEMS electrical connector includes:

a plurality of subcomponents, and

a plurality of coupling assemblies configured to couple the plurality of subcomponents together, wherein each of the plurality of coupling assemblies includes a latch bolt and a latch catch configured to engage the latch bolt, wherein each latch catch includes a tumbler spring for engaging a recess in the latch bolt, and wherein each latch bolt includes a push spring configured to bias the latch bolt against the tumbler spring.

12. The micro-electrical-mechanical system (MEMS) actuator of claim 11 wherein the multi-piece MEMS electrical connector includes four subcomponents and a plurality of coupling assemblies configured to couple the four subcomponents together.

13. The micro-electrical-mechanical system (MEMS) actuator of claim 12 wherein:

a first portion of the plurality of electrically conductive flexures are configured to electrically couple a first portion of the MEMS actuation core to a first subcomponent;

a second portion of the plurality of electrically conductive flexures are configured to electrically couple a second portion of the MEMS actuation core to a second subcomponent;

a third portion of the plurality of electrically conductive flexures are configured to electrically couple a third portion of the MEMS actuation core to a third subcomponent; and

a fourth portion of the plurality of electrically conductive flexures are configured to electrically couple a fourth portion of the MEMS actuation core to a fourth subcomponent.

14. The micro-electrical-mechanical system (MEMS) actuator of claim 13 wherein one of:

the first, second, third and fourth portions of the plurality of electrically conductive flexures are configured to be generally flat in shape when the plurality of subcomponents are uncoupled; and

the first, second, third and fourth portions of the plurality of electrically conductive flexures are configured to be generally arched in shape when the plurality of subcomponents are coupled together.

15. A micro-electrical-mechanical system (MEMS) actuator comprising:

a MEMS actuation core; and

a multi-piece MEMS electrical connector assembly electrically coupled to the MEMS actuation core and configured to be electrically coupled to a printed circuit board, wherein the multi-piece MEMS electrical connector includes:

a plurality of electrically conductive flexures,

four subcomponents, and

a plurality of coupling assemblies configured to couple the four subcomponents together;

wherein:

a first portion of the plurality of electrically conductive flexures are configured to electrically couple a first portion of the MEMS actuation core to a first subcomponent,

a second portion of the plurality of electrically conductive flexures are configured to electrically couple a second portion of the MEMS actuation core to a second subcomponent,

a third portion of the plurality of electrically conductive flexures are configured to electrically couple a third portion of the MEMS actuation core to a third subcomponent, and

a fourth portion of the plurality of electrically conductive flexures are configured to electrically couple a fourth portion of the MEMS actuation core to a fourth subcomponent, wherein the first, second, third and fourth portions of the plurality of electrically conductive flexures are configured to be generally flat in shape when the plurality of subcomponents are uncoupled, and wherein the first, second, third and fourth portions of the plurality of electrically conductive flexures are configured to be generally arched in shape when the plurality of subcomponents are coupled together.

16. The micro-electrical-mechanical system (MEMS) actuator of claim 15 wherein each of the plurality of coupling assemblies includes:

a latch bolt; and

a latch catch configured to engage the latch bolt.

17. The micro-electrical-mechanical system (MEMS) actuator of claim 16 wherein each latch catch includes:

a tumbler spring for engaging a recess in the latch bolt.

18. The micro-electrical-mechanical system (MEMS) actuator of claim 17 wherein each latch bolt includes:

a push spring configured to bias the latch bolt against the tumbler spring.

Assignments (2)
INTELLECTUAL PROPERTY AGREEMENT Recorded Mar 24, 2021
From: MEMS DRIVE INC.
To: MEMS DRIVE (NANJING) CO., LTD
Reel/Frame 055709/0399 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 19, 2017
From: LIU, XIAOLEI; NG, MATTHEW; WANG, GUIQIN
To: MEMS DRIVE, INC.
Reel/Frame 043628/0591 →
Continuity (6)
Provisional Application 62393436 · Sep 12, 2016
Provisional Application 62393419 · Sep 12, 2016
Provisional Application 62419117 · Nov 8, 2016
Provisional Application 62419814 · Nov 9, 2016
Provisional Application 62420960 · Nov 11, 2016
Related Publication 20180076740A1 · Mar 15, 2018